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双生物正交分子工具:小分子和材料表面的“点击释放”和“双击”反应性。

Dual-Bioorthogonal Molecular Tool: "Click-to-Release" and "Double-Click" Reactivity on Small Molecules and Material Surfaces.

机构信息

Department of Chemistry and the Centre for Materials and Biomaterials Research , Western University , 1151 Richmond Street , London , Ontario N6A 5B7 , Canada.

Department of Biochemistry , Western University , London , Ontario N6A 5C1 , Canada.

出版信息

Bioconjug Chem. 2019 Apr 17;30(4):1140-1149. doi: 10.1021/acs.bioconjchem.9b00078. Epub 2019 Mar 14.

Abstract

The development of reactive moieties that enable molecular control of bond-forming and bond-breaking reactions within complex media is highly important in materials and biomaterials research as it provides opportunities to carefully manipulate small molecules and material surfaces in a reliable manner. Despite recent advances in the realization of new ligation strategies and "click-and-release" systems, there has been little development of multifunctional moieties that feature a broad range of chemical capabilities. To address this challenge, we designed a molecular tool that can utilize four well-defined bioorthogonal chemistries interchangeably for the attachment, replacement, and release of molecules within a system: the Staudinger-Bertozzi ligation (SBL), perfluoroaryl azide Staudinger reaction (PFAA-SR), strain-promoted alkyne-azide cycloaddition (SPAAC), and strain-promoted alkyne-nitrone cycloaddition (SPANC). We demonstrate "click-to-release" and "double-click" reactivity on small molecules and gold nanoparticles (AuNPs) as a model material substrate. As a proof of concept for material derivatization, we employed 5 nm AuNPs-functionalized with a Rhodamine B derivative and biotin through the double-click strategy-and showed their potential as a pretargeted delivery nanocarrier. This multifunctional molecular tool enables the design and production of molecular and material systems with unique, modular, and tunable dynamic properties that can be altered under mild and bioorthogonal conditions.

摘要

在材料和生物材料研究中,开发能够在复杂介质中实现成键和断键反应分子控制的反应性基团非常重要,因为它为以可靠的方式精细操控小分子和材料表面提供了机会。尽管在实现新的连接策略和“点击-释放”系统方面取得了最近的进展,但具有广泛化学功能的多功能基团的发展却很少。为了解决这一挑战,我们设计了一种分子工具,它可以使用四种定义明确的生物正交化学反应,在系统内可互换地用于分子的附着、取代和释放:Staudinger-Bertozzi 连接(SBL)、全氟芳基叠氮化物 Staudinger 反应(PFAA-SR)、应变促进炔烃-叠氮化物环加成(SPAAC)和应变促进炔烃-硝酮环加成(SPANC)。我们在小分子和金纳米粒子(AuNPs)上证明了“点击-释放”和“双击”反应性,作为模型材料基底。作为材料衍生化的概念验证,我们通过双击策略使用 Rhodamine B 衍生物和生物素功能化的 5nm AuNPs,并展示了它们作为前靶向递药纳米载体的潜力。这种多功能分子工具使具有独特、模块化和可调谐动态特性的分子和材料系统的设计和生产成为可能,并且可以在温和且生物正交的条件下进行改变。

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